Generalising template synthesis of EAS radio emission to other geometries
Mitja Desmet, Stijn Buitink, Tim Huege

TL;DR
This paper advances the template synthesis method for radio emission from cosmic-ray air showers, extending it to various geometries and demonstrating its accuracy across different zenith angles and energies.
Contribution
It generalizes the template synthesis approach to arbitrary geometries, improving computational efficiency for high-energy cosmic-ray air shower analysis.
Findings
Achieved 10% accuracy in radio emission synthesis across various geometries.
Extended the method to include different zenith angles.
Validated the approach with hundreds of CORSIKA simulations.
Abstract
Over the last few decades, radio detection has become one of the standard techniques to study high-energy cosmic-ray air showers. For the purpose of analysing the data, we heavily rely on Monte Carlo simulations. Upcoming dense radio array experiments such as LOFAR2.0 and SKA will, however, reach the limit of what is computationally feasible with these. Other techniques are available, based on macroscopic quantities, but their accuracy has thus far not been adequate to use them in precision analyses. In this contribution we present the latest update on the template synthesis approach, a hybrid model using both micro- and macroscopic inputs to synthesise the radio emission for an air shower with an arbitrary longitudinal profile. The method starts from the emission of a given shower and employs semi-analytical relations which only depend on the atmospheric depth at shower maximum and…
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